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1. Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition). Autophagy

2. Pexophagy

3. Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition).

4. Conformational Transitions Accompanying Oligomerization of Yeast Alcohol Oxidase, a Peroxisomal Flavoenzyme

5. Guidelines for the use and interpretation of assays for monitoring autophagy.

6. The Hansenula polymorpha PDD1 gene product, essential for the selective degradation of peroxisomes, is a homologue of Saccharomyces cerevisiae Vps34p

7. Characterization of the Hansenula polymorpha CPY gene encoding carboxypeptidase Y

8. Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition)

9. Overexpression of PEX14 results in mistargeting to mitochondria, accompanied by organelle fragmentation and clustering in human embryonic kidney cells.

10. STED super-resolution microscopy unveils the dynamics of Atg30 on yeast Pex3-labeled peroxisomes.

11. The Hansenula polymorpha mitochondrial carrier family protein Mir1 is dually localized at peroxisomes and mitochondria.

12. Gluing yeast peroxisomes - composition and function of membrane contact sites.

13. Novel targeting assay uncovers targeting information within peroxisomal ABC transporter Pxa1.

14. Correlative Light- and Electron Microscopy in Peroxisome Research.

15. Structure-function analysis of the ER-peroxisome contact site protein Pex32.

16. Yeast Vps13 is Crucial for Peroxisome Expansion in Cells With Reduced Peroxisome-ER Contact Sites.

17. Comparative Genomics of Peroxisome Biogenesis Proteins: Making Sense of the PEX Proteins.

18. Peroxisome retention involves Inp1-dependent peroxisome-plasma membrane contact sites in yeast.

19. Pex24 and Pex32 are required to tether peroxisomes to the ER for organelle biogenesis, positioning and segregation in yeast.

20. Flotillin-mediated membrane fluidity controls peptidoglycan synthesis and MreB movement.

21. Hansenula polymorpha Pex37 is a peroxisomal membrane protein required for organelle fission and segregation.

22. Peroxisome Maintenance Depends on De Novo Peroxisome Formation in Yeast Mutants Defective in Peroxisome Fission and Inheritance.

24. The peroxisome biogenesis factors Pex3 and Pex19: multitasking proteins with disputed functions.

25. Peroxisome development in yeast is associated with the formation of Pex3-dependent peroxisome-vacuole contact sites.

26. Yeast peroxisomes: How are they formed and how do they grow?

27. Assembly of the Mitochondrial Cristae Organizer Mic10 Is Regulated by Mic26-Mic27 Antagonism and Cardiolipin.

28. Yeast cells contain a heterogeneous population of peroxisomes that segregate asymmetrically during cell division.

29. Saccharomyces cerevisiae cells lacking Pex3 contain membrane vesicles that harbor a subset of peroxisomal membrane proteins.

30. Impaired biosynthesis of the non-bilayer lipids phosphatidylethanolamine or cardiolipin does not affect peroxisome biogenesis and proliferation in Saccharomyces cerevisiae.

31. The birth of yeast peroxisomes.

32. Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition).

33. Stress exposure results in increased peroxisomal levels of yeast Pnc1 and Gpd1, which are imported via a piggy-backing mechanism.

34. Yeast pex1 cells contain peroxisomal ghosts that import matrix proteins upon reintroduction of Pex1.

35. Phosphorylation of Pex11p does not regulate peroxisomal fission in the yeast Hansenula polymorpha.

36. The membrane remodeling protein Pex11p activates the GTPase Dnm1p during peroxisomal fission.

37. Central role of Mic10 in the mitochondrial contact site and cristae organizing system.

38. Inhibition of peroxisome fission, but not mitochondrial fission, increases yeast chronological lifespan.

39. Peroxisomal quality control mechanisms.

40. At neutral pH the chronological lifespan of Hansenula polymorpha increases upon enhancing the carbon source concentrations.

41. Uniform nomenclature for the mitochondrial contact site and cristae organizing system.

42. A critical reflection on the principles of peroxisome formation in yeast.

43. Preperoxisomal vesicles can form in the absence of Pex3.

44. Lipid droplet autophagy in the yeast Saccharomyces cerevisiae.

45. Tools for genetic engineering of the yeast Hansenula polymorpha.

46. The significance of peroxisome function in chronological aging of Saccharomyces cerevisiae.

47. Pexophagy-linked degradation of the peroxisomal membrane protein Pex3p involves the ubiquitin-proteasome system.

48. Lumenal peroxisomal protein aggregates are removed by concerted fission and autophagy events.

49. Improving penicillin biosynthesis in Penicillium chrysogenum by glyoxalase overproduction.

50. Lipid droplets and peroxisomes: key players in cellular lipid homeostasis or a matter of fat--store 'em up or burn 'em down.

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